Designing an Integrated All-Optical Analog to Digital Converter
Author(s) -
Sajjad Moshfe,
Mohammad Kazem MoravvejFarshi,
Kambiz Abedi
Publication year - 2020
Publication title -
international journal of optics and photonics
Language(s) - English
Resource type - Journals
eISSN - 2538-4007
pISSN - 1735-8590
DOI - 10.29252/ijop.14.1.3
Subject(s) - gaussian , digital to analog converter , pulse amplitude modulation , differential nonlinearity , analog to digital converter , pulse code modulation , optics , analog signal , electronic engineering , wavelength , optical amplifier , physics , pulse width modulation , center frequency , modulation (music) , band pass filter , optoelectronics , computer science , pulse (music) , power (physics) , electrical engineering , engineering , digital signal processing , telecommunications , voltage , laser , acoustics , cmos , detector , quantum mechanics , transmission (telecommunications)
We present the procedure for designing a high speed and low power alloptical analog to digital converter (AO-ADC), by integrating InGaAsP semiconductor optical amplifier (SOA) with InP based photonic crystal (PhC) drop filters. The self-phase modulation in the SOA can shift the frequency of the Gaussian input pulse. The two output PhC based drop filters are designed to appropriately code the frequency-shifted analog signals by the SOA, converting them to four desired digital output levels. Our numerical results show that in an appropriately designed AO-ADC, the center wavelength (1572 nm) of an amplitude modulated Gaussian pulse of 1.8 ps width and 1.56 pJ energy can be shifted by 6.7 nm, by the SOA, and then be quantized and coded to four digital levels (00, 01, 10, and 11). The two point-defect PhC drop filters, compensating the effect of the frequency shift by SOA, minimize the AO-ADC integral and differential nonlinearity errors.
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